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光诱导的Notch活性控制神经祖细胞的神经发生和胶质发生潜能。

Light-induced Notch activity controls neurogenic and gliogenic potential of neural progenitors.

作者信息

Kim Kyung-Tai, Song Mi-Ryoung

机构信息

School of Life Sciences, Gwangju Institute of Science and Technology, Oryong-dong, Buk-gu, Gwangju 500-712, Republic of Korea.

School of Life Sciences, Gwangju Institute of Science and Technology, Oryong-dong, Buk-gu, Gwangju 500-712, Republic of Korea.

出版信息

Biochem Biophys Res Commun. 2016 Oct 28;479(4):820-826. doi: 10.1016/j.bbrc.2016.09.124. Epub 2016 Sep 25.

Abstract

Oscillations in Notch signaling are essential for reserving neural progenitors for cellular diversity in developing brains. Thus, steady and prolonged overactivation of Notch signaling is not suitable for generating neurons. To acquire greater temporal control of Notch activity and mimic endogenous oscillating signals, here we adopted a light-inducible transgene system to induce active form of Notch NICD in neural progenitors. Alternating Notch activity saved more progenitors that are prone to produce neurons creating larger number of mixed clones with neurons and progenitors in vitro, compared to groups with no light or continuous light stimulus. Furthermore, more upper layer neurons and astrocytes arose upon intermittent Notch activity, indicating that dynamic Notch activity maintains neural progeny and fine-tune neuron-glia diversity.

摘要

Notch信号通路的振荡对于在发育中的大脑中保留神经祖细胞以实现细胞多样性至关重要。因此,Notch信号通路的持续过度激活并不适合用于生成神经元。为了更好地在时间上控制Notch活性并模拟内源性振荡信号,我们在此采用了一种光诱导转基因系统,以在神经祖细胞中诱导Notch NICD的活性形式。与无光或持续光刺激的组相比,交替的Notch活性挽救了更多易于产生神经元的祖细胞,在体外产生了更多由神经元和祖细胞组成的混合克隆。此外,间歇性Notch活性产生了更多的上层神经元和星形胶质细胞,这表明动态的Notch活性维持了神经后代并微调了神经元-胶质细胞的多样性。

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